mirror of
https://github.com/game-stop/veejay.git
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230 lines
5.6 KiB
C
230 lines
5.6 KiB
C
/*
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* Linux VeeJay
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*
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* Copyright(C)2004-2016 Niels Elburg <nwelburg@gmail.com>
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*
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* This program is free software; you can redistribute it and/or
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* modify it under the terms of the GNU General Public License
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* as published by the Free Software Foundation; either version 2
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* of the License , or (at your option) any later version.
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*
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* This program is distributed in the hope that it will be useful,
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* but WITHOUT ANY WARRANTY; without even the implied warranty of
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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* GNU General Public License for more details.
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*
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* You should have received a copy of the GNU General Public License
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* along with this program; if not, write to the Free Software
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* Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307 , USA.
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*/
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#include <config.h>
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#include <stdlib.h>
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#include <stdint.h>
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#include <stdio.h>
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#include <libvjmem/vjmem.h>
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#include "morphology.h"
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#include "common.h"
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typedef uint8_t (*morph_func)(uint8_t *kernel, uint8_t *mt );
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static uint8_t kernels[8][9] ={
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{ 1,1,1, 1,1,1 ,1,1,1 },//0
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{ 0,1,0, 1,1,1, 0,1,0 },//1
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{ 0,0,0, 1,1,1, 0,0,0 },//2
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{ 0,1,0, 0,1,0, 0,1,0 },//3
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{ 0,0,1, 0,1,0, 1,0,0 },//4
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{ 1,0,0, 0,1,0, 0,0,1 },
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{ 1,1,1, 0,0,0, 0,0,0 },
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{ 0,0,0, 0,0,0, 1,1,1 }
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};
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vj_effect *morphology_init(int w, int h)
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{
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vj_effect *ve = (vj_effect *) vj_calloc(sizeof(vj_effect));
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ve->num_params = 4;
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ve->defaults = (int *) vj_calloc(sizeof(int) * ve->num_params); /* default values */
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ve->limits[0] = (int *) vj_calloc(sizeof(int) * ve->num_params); /* min */
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ve->limits[1] = (int *) vj_calloc(sizeof(int) * ve->num_params); /* max */
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ve->limits[0][0] = 0; // threshold
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ve->limits[1][0] = 255;
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ve->limits[0][1] = 0;
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ve->limits[1][1] = 7; // convolution kernel
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ve->limits[0][2] = 0;
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ve->limits[1][2] = 1; // morphology operator
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ve->limits[0][3] = 0;
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ve->limits[1][3] = 1; // luma or alpha
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ve->defaults[0] = 140;
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ve->defaults[1] = 0;
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ve->defaults[2] = 0;
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ve->defaults[3] = 0;
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ve->description = "Morphology (Erosion/Dilation)";
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ve->sub_format = -1;
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ve->extra_frame = 0;
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ve->has_user = 0;
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ve->param_description = vje_build_param_list( ve->num_params,"Threshold", "Convolution Kernel", "Mode", "Channel");
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ve->hints = vje_init_value_hint_list( ve->num_params );
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vje_build_value_hint_list(ve->hints, ve->limits[1][1], 1,
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"[1,1,1],[1,1,1],[1,1,1]",
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"[0,1,0],[1,1,1],[0,1,0]",
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"[0,0,0],[1,1,1],[0,0,0]",
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"[0,1,0],[0,1,0],[0,1,0]",
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"[0,0,1],[0,1,0],[1,0,0]",
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"[1,0,0],[0,1,0],[0,0,1]",
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"[1,1,1],[0,0,0],[0,0,0]",
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"[0,0,0],[0,0,0],[1,1,1]" );
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vje_build_value_hint_list(ve->hints, ve->limits[1][2], 2,
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"Dilate",
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"Erode" );
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vje_build_value_hint_list(ve->hints, ve->limits[1][3], 3,
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"Luminance",
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"Alpha" );
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return ve;
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}
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static uint8_t *binary_img = NULL;
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int morphology_malloc(int w, int h )
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{
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binary_img = (uint8_t*) vj_malloc(sizeof(uint8_t) * w * h );
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if(!binary_img) return 0;
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return 1;
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}
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void morphology_free(void)
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{
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if(binary_img)
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free(binary_img);
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binary_img = NULL;
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}
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static uint8_t _dilate_kernel3x3( uint8_t *kernel, uint8_t img[9])
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{
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register int x;
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/* if one of the neighbouring pixels is up, return 0xff */
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for(x = 0; x < 9; x ++ )
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if((kernel[x] * img[x]) > 0 )
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return 0xff;
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return 0;
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}
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static uint8_t _erode_kernel3x3( uint8_t *kernel, uint8_t img[9])
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{
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register int x;
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/* if one of the neighbouring pixels is down, return 0 */
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for(x = 0; x < 9; x ++ )
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if(kernel[x] && img[x] == 0 )
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return 0;
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return 0xff;
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}
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static morph_func _morphology_function(int i)
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{
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if( i == 0 )
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return _dilate_kernel3x3;
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return _erode_kernel3x3;
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}
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static void morph_threshold_image( const uint8_t *I, const int len, const int threshold, uint8_t *O )
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{
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unsigned int i;
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for( i = 0; i < len; i ++ )
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{
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binary_img[i] = ( I[i] < threshold ? 0: 0xff );
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}
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}
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void morphology_apply( VJFrame *frame, int threshold, int convolution_kernel, int mode, int channel )
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{
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unsigned int x,y;
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int len = frame->len;
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int width = frame->width;
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int height = frame->height;
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const unsigned int uv_len = (frame->ssm ? frame->len : frame->uv_len);
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uint8_t *I = frame->data[0];
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uint8_t *Cb = frame->data[1];
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uint8_t *Cr = frame->data[2];
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switch( channel ) {
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case 1: I = frame->data[3];
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break;
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default:
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I = frame->data[0];
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break;
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}
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morph_func p = _morphology_function(mode);
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if( threshold == 0 ) {
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/* assume image is binary thresholded already */
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veejay_memcpy( binary_img, I, len );
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}
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else {
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morph_threshold_image( I, len, threshold, binary_img );
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}
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if( channel == 0 ) { /* other channel is alpha */
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veejay_memset( Cb, 128, uv_len );
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veejay_memset( Cr, 128, uv_len );
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}
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len -= width;
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if( mode == 0 ) {
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for(y = width; y < len; y += width )
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{
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for(x = 1; x < width-1; x ++)
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{
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if(binary_img[x+y] == 0)
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{
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uint8_t mt[9] = {
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binary_img[x-1+y-width], binary_img[x+y-width], binary_img[x+1+y-width],
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binary_img[x-1+y],binary_img[x+y], binary_img[x+1+y],
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binary_img[x-1+y+width], binary_img[x+y+width], binary_img[x+1+y+width]
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};
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I[x+y] = p( kernels[convolution_kernel], mt );
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}
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else
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{
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I[x+y] = 0xff;
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}
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}
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}
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}
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else {
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for(y = width; y < len; y += width )
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{
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for(x = 1; x < width-1; x ++)
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{
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if(binary_img[x+y] == 0xff)
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{
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uint8_t mt[9] = {
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binary_img[x-1+y-width], binary_img[x+y-width], binary_img[x+1+y-width],
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binary_img[x-1+y], binary_img[x+y],binary_img[x+1+y],
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binary_img[x-1+y+width], binary_img[x+y+width], binary_img[x+1+y+width]
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};
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I[x+y] = p( kernels[convolution_kernel], mt );
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}
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else
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{
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I[x+y] = 0;
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}
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}
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}
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}
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}
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